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Electrical Design of a 17 MW Class HTS Motor for Ship Propulsion

机译:船舶推进用17兆瓦级高温超导电动机的电气设计

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A superconducting motor shows several advantages, such as smaller size and higher efficiency, over a conventional motor, especially utilized in ship propulsion applications. However, the size reduction merit appears for large capacity, more than several MW. We develop a large capacity synchronous motor with a rotating high-temperature superconducting (HTS) coil, that is aimed to be utilized for ship propulsion, so it has a low rotating speed of about 200 rpm. The ship propulsion motor must generate high electromagnetic torque instead of low speed. Therefore, the rotor (field) coils have to generate a large magnetic flux that results in a large amount of expensive HTS conductor for the field coil. In this paper a 17 MW HTS motor for ship propulsion is designed with a cost-effective method because the HTS conductor cost is a critical factor in the construction of an HTS motor. Unlike conventional rotating machines, the superconducting motor consists of an iron-coreless structure. Most conventional motors can be designed with small error based on two-dimensional magnetic field analysis. However, the superconducting motor shows an even larger error between the two- and three-dimensional based designs. Thus, in order to improve the design accuracy, we have calculated the back electromotive force (EMF) using 3D magnetic field analysis. An output performance evaluation has also been carried out to obtain a design with higher efficiency.
机译:与传统的电动机相比,超导电动机具有多个优点,例如体积更小,效率更高,尤其是在船舶推进应用中。但是,对于大容量(超过几兆瓦)而言,减小尺寸的优点显得很明显。我们开发了一种带有旋转高温超导(HTS)线圈的大容量同步电机,旨在用于船舶推进,因此它的低转速约为200 rpm。船舶推进电动机必须产生高电磁转矩而不是低速。因此,转子(场)线圈必须产生大的磁通量,这导致用于场线圈的大量昂贵的HTS导体。在本文中,采用高性价比的方法设计了一种用于船舶推进的17 MW HTS电动机,因为HTS导体的成本是构造HTS电动机的关键因素。与传统的旋转电机不同,超导电机由无铁芯结构组成。基于二维磁场分析,可以将大多数常规电动机设计为误差很小。然而,在基于二维和三维的设计之间,超导电动机显示出甚至更大的误差。因此,为了提高设计精度,我们使用3D磁场分析计算了反电动势(EMF)。还进行了输出性能评估,以获得更高效率的设计。

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